首页|高强金属丝材的力学行为与变形机理

高强金属丝材的力学行为与变形机理

扫码查看
金属丝材作为一类独特的结构及功能材料,具有悠久的发展历史,并在诸多领域发挥着不可替代的作用.目前,人们已经发展了多种成熟的丝材加工工艺,并制备出多种高强韧金属丝材.其中,传统珠光体钢丝保持着金属丝材最高抗拉强度的世界纪录,而新型高熵合金丝材成功克服了传统丝材强度与塑性之间的矛盾关系和低温脆性的问题,显示出在复杂服役环境下的巨大应用潜力.由于金属丝材各异的微观结构和物理化学特性,其表现出各自独特的力学行为和复杂迥异的强塑性变形机理.多晶合金丝材的高强度主要源于界面强化和位错强化等多种强化机制的共同作用,其塑性变形涉及位错运动和变形孪生等多种复杂的塑性变形机理;非晶合金丝材的高强度源于其本征的原子无序结构,其塑性变形则主要与流动缺陷的激活与聚集有关.为了进一步实现金属丝材强韧化,研究者提出了微观组织细化和不均匀结构设计等有效途径.随着金属丝直径的减小,变形尺寸效应显现,考虑尺寸效应的应变梯度塑性理论相继发展并有效应用于金属丝材力学行为描述.本文对金属丝材的发展历史、制备工艺和典型高强金属丝材的力学行为、强塑性变形机理以及本构模型进行了回顾与综述,并对未来研究值得关注的方向提出了几点展望.
Mechanical behavior and deformation mechanism of high-strength metallic wires
Metallic wires,as a distinctive type of structural and functional materials,have a long history and play irreplaceable roles in the fields of energy,transportation,marine vessels and so on.With the development of national strategic demands,the new generation of major equipment faces challenges in extreme service environments,such as deep space,deep sea and polar regions,and the corresponding harsh application scenarios,i.e.,high-speed impact,cryogenic temperature and corrosion,etc.,pose significant challenges to the service reliability of high-strength metallic wires.Therefore,not only to provide adequate supports for most challenged structural applications,but also to save material cost,developing high-performance metallic wires and revealing their mechanical behavior have been pressing and vital subjects.Up to date,researchers have invented numerous wire preparation technologies,including the drawing method,glass coated method,rotating water melt-spinning method,melt-extraction method and drawing method in the supercooled liquid region,leading to the emergence of various high-performance metallic wires,such as traditional pearlitic steel wires,amorphous alloy wires and high entropy alloy wires,etc.Among high-strength metallic wires,conventional pearlitic steel wires currently hold the world record for the highest tensile strength of metallic wires,while novel high entropy alloy wires have successfully addressed the strength-ductility trade-off dilemma among traditional wires,as well as the issues of low-temperature brittleness,showing great application potential under harsh service circumstances.Due to the different microstructures and physical and chemical properties,different types of metallic wires exhibit unique mechanical behaviors and complex plastic deformation mechanisms.The high strength of polycrystalline alloy wires,e.g.,pearlitic steel wires and high entropy alloy wires,primarily arises from multiple strengthening mechanisms,such as boundary hardening,dislocation hardening,precipitation strengthening,etc.,while the high strength of amorphous alloy wires stems from their intrinsic atomic disordered structures.The plastic deformation of polycrystalline alloy wires is characterized by a variety of complex plastic deformation mechanisms,including dislocation motion,propagation of stacking faults,deformation twinning,phase transformation and their interactions,while the plastic deformation of amorphous alloy wires is mainly related to the activation and aggregation of flow defects.In order to further enhance the strength and ductility of metallic wires,researchers have proposed amounts of effective methods,such as regulating alloy composition,refining microstructures and designing non-uniform structures.As the diameter of metallic wire decreases,a deformation size effect becomes apparent,then the strain-gradient plasticity theory that considers this size effect has been developed and effectively applied to describe the mechanical behavior of these metallic wires.In this paper,the development history and preparation technologies of metallic wires,and mechanical behaviors,plastic deformation mechanisms and constitutive models of typical high-strength metallic wires are reviewed and summarized.Some prospects for future research are further put forward,e.g.,developing brand-new high-strength metallic wires with a better combination of strength and plasticity,conducting comprehensive and extensive mechanical tests of high-strength metallic wires(including fatigue assessments and impact tests),and establishing effective constitutive models for high-strength metallic wires based on plastic deformation mechanisms.

metallic wirespreparation technologiesmechanical behaviorsplastic deformation mechanismsconstitutive model

陈金玺、徐彬、戴兰宏、陈艳

展开 >

中国科学院力学研究所,非线性力学国家重点实验室,北京 100190

中国科学院大学工程科学学院,北京 101408

金属丝材 制备工艺 力学行为 塑性变形机理 本构模型

国家自然科学基金中国科学院稳定支持基础研究领域青年团队计划中国科学院战略性先导科技专项(B类)

12322214YSBR-096XDB0620301

2024

科学通报
中国科学院国家自然科学基金委员会

科学通报

CSTPCD北大核心
影响因子:1.269
ISSN:0023-074X
年,卷(期):2024.69(21)
  • 7